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Updated: Jan 23, 2026

Megakaryocyte Differentiation and Platelet Formation from Human Cord Blood-derived CD34+ Cells
Published on: December 27, 2017
Platelet-derived growth factor receptor alpha regulates fetal testis differentiation via an ERK-CREB axis
Shu-Yun Li1, Satoko Matsuyama1, Sarah Whiteside1
1Reproductive Sciences Center, Division of Developmental Biology, Cincinnati Children's Hospital Medical Center, Cincinnati, OH 45229.
Insights
Platelet-derived growth factor receptor alpha (Pdgfra) signaling is vital for fetal testis development. It activates the ERK pathway, essential for testis cord formation and Leydig cell differentiation.
Area of Science:
- Developmental Biology
- Cell Signaling
- Reproductive Biology
Background:
- Platelet-derived growth factor receptor alpha (Pdgfra) is key in mesenchymal cell differentiation.
- Its precise role and signaling in fetal testis development are not fully understood.
Purpose of the Study:
- To investigate the molecular mechanisms of testicular organogenesis and fetal Leydig cell differentiation.
- To elucidate the role of Pdgfra signaling in these processes.
Main Methods:
- Utilized XY Pdgfra-null gonads and a genetic mouse model.
- Employed ex vivo whole-organ culture, small interfering RNA (siRNA) cell culture, and transwell assays.
- Disrupted ERK signaling in gonadal cells.
Main Results:
- Pdgfra signaling activates the extracellular signal-regulated kinase (ERK) pathway in the fetal testis.
- ERK signaling promotes testis cord formation through early growth response 1-mediated cell migration.
- ERK signaling regulates steroidogenic enzyme expression in fetal Leydig cells via cAMP responsive element binding protein 1.
Conclusions:
- The Pdgfra signaling network is crucial for fetal testis organogenesis.
- This pathway influences mesenchymal cell differentiation and may be implicated in gonadal development disorders.
Abstract:
Platelet-derived growth factor receptor alpha (Pdgfra) plays a crucial role in mesenchymal cell differentiation, but the molecular signaling involved in this process remains unclear, particularly within the fetal testis. Here, we use XY Pdgfra-null gonads to investigate the molecular mechanisms underlying testicular organogenesis, focusing on the formation of testicular architecture and the differentiation of fetal Leydig cells (FLCs), the steroidogenic lineage arising from mesenchymal precursors within the testicular interstitial compartment. The extracellular signal-regulated kinase (ERK) pathway, a well-known mitogen-activated signaling pathway, was significantly inhibited in XY Pdgfra-null gonads, suggesting that ERK signaling is activated downstream of PDGFRA. Using ex vivo whole-organ culture, small interfering RNA cell culture methods, transwell assays, and a genetic mouse model to disrupt ERK signaling in gonadal cells, we found that the ERK pathway promotes testis cord formation via early growth response 1-mediated cell migration and regulates the expression of steroidogenic enzymes in FLCs via activating the transcription factor cAMP responsive element binding protein 1. These findings highlight the significance of the PDGFRA signaling network in fetal testis organogenesis, thus providing insights into mesenchymal cell differentiation and the etiology of congenital disorders related to gonadal development.
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